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A global optimization approach to roof segmentation from airborne lidar point clouds

机译:一种从机载激光雷达点云分割屋顶的全局优化方法

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摘要

This paper presents a global plane fitting approach for roof segmentation from lidar point clouds. Starting with a conventional plane fitting approach (e.g., plane fitting based on region growing), an initial segmentation is first derived from roof lidar points. Such initial segmentation is then optimized by minimizing a global energy function consisting of the distances of lidar points to initial planes (labels), spatial smoothness between data points, and the number of planes. As a global solution, the proposed approach can determine multiple roof planes simultaneously. Two lidar data sets of Indianapolis (USA) and Vaihingen (Germany) are used in the study. Experimental results show that the completeness and correctness are increased from 80.1% to 92.3%, and 93.0% to 100%, respectively; and the detection cross-lap rate and reference cross-lap rate are reduced from 11.9% to 2.2%, and 24.6% to 5.8%, respectively. As a result, the incorrect segmentation that often occurs at plane transitions is satisfactorily resolved; and the topo-logical consistency among segmented planes is correctly retained even for complex roof structures.
机译:本文提出了一种从激光雷达点云分割屋顶的全局平面拟合方法。从常规的平面拟合方法(例如,基于区域增长的平面拟合)开始,首先从屋顶激光雷达点得出初始分割。然后,通过最小化由激光雷达点到初始平面(标签)的距离,数据点之间的空间平滑度和平面数组成的全局能量函数来优化此类初始分割。作为全局解决方案,提出的方法可以同时确定多个屋顶平面。该研究使用了印第安纳波利斯(美国)和维辛根(德国)的两个激光雷达数据集。实验结果表明,完整性和正确性分别从80.1%增加到92.3%,从93.0%增加到100%。检测交叉重叠率和参考交叉重叠率分别从11.9%降低到2.2%,从24.6%降低到5.8%。结果,令人满意地解决了在平面过渡处经常发生的错误分割。即使对于复杂的屋顶结构,也可以正确保留分割平面之间的拓扑一致性。

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  • 作者单位

    School of Remote Sensing and Information Engineering, Wuhan University, 129 Luoyu Rd., 430079 Wuhan, China;

    School of Remote Sensing and Information Engineering, Wuhan University, 129 Luoyu Rd., 430079 Wuhan, China,School of Civil Engineering, Purdue University, West Lafayette, IN 47907, USA;

    State Key Laboratory of Information Engineering in Surveying, Mapping and Remote Sensing, Wuhan University, 129 Luoyu Rd., 430079 Wuhan, China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Segmentation; City modeling Buildings; Lidar; Point clouds; Global optimization;

    机译:分割;城市模型建筑;激光雷达点云;全局优化;
  • 入库时间 2022-08-18 03:34:14

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